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Targeting enhancer reprogramming to mitigate MEK inhibitor resistance in preclinical models of advanced ovarian cancer
Shini Liu, Qiong Zou, Jie-Ping Chen, Xiaosai Yao, Peiyong Guan, Weiting Liang, Peng Deng, Xiaowei Lai, Jiaxin Yin, Jinghong Chen, Rui Chen, Zhaoliang Yu, Rong Xiao, Yichen Sun, Jing Han Hong, Hui Liu, Huaiwu Lu, Jianfeng Chen, Jin-Xin Bei, Joanna Koh, Jason Yongsheng Chan, Baohua Wang, Tiebang Kang, Qiang Yu, Bin-Tean Teh, Jihong Liu, Ying Xiong, Jing Tan
Shini Liu, Qiong Zou, Jie-Ping Chen, Xiaosai Yao, Peiyong Guan, Weiting Liang, Peng Deng, Xiaowei Lai, Jiaxin Yin, Jinghong Chen, Rui Chen, Zhaoliang Yu, Rong Xiao, Yichen Sun, Jing Han Hong, Hui Liu, Huaiwu Lu, Jianfeng Chen, Jin-Xin Bei, Joanna Koh, Jason Yongsheng Chan, Baohua Wang, Tiebang Kang, Qiang Yu, Bin-Tean Teh, Jihong Liu, Ying Xiong, Jing Tan
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Research Article Oncology

Targeting enhancer reprogramming to mitigate MEK inhibitor resistance in preclinical models of advanced ovarian cancer

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Abstract

Ovarian cancer is characterized by aberrant activation of the mitogen-activated protein kinase (MAPK), highlighting the importance of targeting the MAPK pathway as an attractive therapeutic strategy. However, the clinical efficacy of MEK inhibitors is limited by intrinsic or acquired drug resistance. Here, we established patient-derived ovarian cancer models resistant to MEK inhibitors and demonstrated that resistance to the clinically approved MEK inhibitor trametinib was associated with enhancer reprogramming. We also showed that enhancer decommissioning induced the downregulation of negative regulators of the MAPK pathway, leading to constitutive ERK activation and acquired resistance to trametinib. Epigenetic compound screening uncovered that HDAC inhibitors could alter the enhancer reprogramming and upregulate the expression of MAPK negative regulators, resulting in sustained MAPK inhibition and reversal of trametinib resistance. Consequently, a combination of HDAC inhibitor and trametinib demonstrated a synergistic antitumor effect in vitro and in vivo, including patient-derived xenograft mouse models. These findings demonstrated that enhancer reprogramming of the MAPK regulatory pathway might serve as a potential mechanism underlying MAPK inhibitor resistance and concurrent targeting of epigenetic pathways and MAPK signaling might provide an effective treatment strategy for advanced ovarian cancer.

Authors

Shini Liu, Qiong Zou, Jie-Ping Chen, Xiaosai Yao, Peiyong Guan, Weiting Liang, Peng Deng, Xiaowei Lai, Jiaxin Yin, Jinghong Chen, Rui Chen, Zhaoliang Yu, Rong Xiao, Yichen Sun, Jing Han Hong, Hui Liu, Huaiwu Lu, Jianfeng Chen, Jin-Xin Bei, Joanna Koh, Jason Yongsheng Chan, Baohua Wang, Tiebang Kang, Qiang Yu, Bin-Tean Teh, Jihong Liu, Ying Xiong, Jing Tan

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Figure 4

Combination drug screen identifies HDAC inhibitors as sensitizers to trametinib in resistant cells.

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Combination drug screen identifies HDAC inhibitors as sensitizers to tra...
(A) Graph showing the results of a drug screen performed in A2780-R and SKOV3 triplicates with 67 compounds either singly or in combination with 0.5 μM trametinib. Data represent the mean of 3 biological replicates. Sixty-seven drugs on-screen are ranked according to the S/C (single/combination) score. Arrows highlight HDAC inhibitors (red). (B) Combination index of MEK and HDAC inhibitors in trametinib-resistant cell lines. Data represent the mean of 3 biological replicates. Combination index greater than 1 was defined as antagonism; combination index less than 1 was defined as synergy. (C) Apoptosis induced by combination of trametinib and HDACi in resistant cell lines. Cell lines were treated as indicated for 72 hours, after which annexin V/propidium iodide staining was performed, followed by flow cytometry. (D and E) Representative images (D) and quantification (E) of colony formation assay in resistant cells treated with vehicle, trametinib, HDACi, or their combination. (F) Immunoblot analysis of ERK and MEK activity in A2780-R, SKOV3, and OVCAR3 cells treated with vehicle, 100 nM trametinib, 25 nM LBH589, or their combination for 72 hours. (G) Immunoblot analysis of ERK and MEK activity in POVC17 cells treated with vehicle, 100 nM trametinib, 50 nM TSA, or their combination for 72 hours. (C and E) Results are represented as mean ± SD of 3 independent experiments. *P < 0.05, **P < 0.01, ***P < 0.001 by 1-way ANOVA with Bonferroni’s post hoc test.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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